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Updated: Sep 11, 2025

Sequence-specific Labeling of Nucleic Acids and Proteins with Methyltransferases and Cofactor Analogues
Published on: November 22, 2014
Revisiting the Methyl Group as a Nonconventional Electron Donor in Triel, Tetrel, Pnictogen, Chalcogen, and Halogen
Hangyu Zhou1, Shunhua Li1, Qingzhong Li1
1The Laboratory of Theoretical and Computational Chemistry, School of Chemistry and Chemical Engineering, Yantai University, Yantai 264005, P. R. China.
Abstract:
Quantum chemical calculations probe the characteristics of noncovalent interactions formed between a methyl group of MgMe2 and a diverse set of p-block Lewis acids spanning the triel, tetrel, pnictogen, chalcogen, and halogen families. High-level ab initio computations show the absence of a formal lone pair on the C. Nonetheless, the highly polarized Mg-C bonds make the C a strong enough electron donor such that it can engage effectively in σ- and π-hole bonding interactions. The binding affinities and interaction characteristics vary markedly with the central atom identity, substituent effects, and molecular geometry of the Lewis acids. Triel compounds exhibit the strongest binding, often accompanied by significant structural reorganization and partial covalent character, exemplified by the stabilization of pentacoordinate carbon species reminiscent of SN2 transition states. Conversely, tetrel, pnictogen, chalcogen, and halogen bonds cover a continuum from weak electrostatic and dispersion-dominated interactions to more heavily covalent bonding as the donor-acceptor interactions intensify.
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